Kitchen sponge

A three-layer urethane foam kitchen sponge with optimized compressive load and strain conditions addresses the balance between dirt-scraping and scratch resistance, improving user experience.

JP7849015B2Active Publication Date: 2026-04-21ARCHEM INC
View PDF 6 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
ARCHEM INC
Filing Date
2022-07-01
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Conventional kitchen sponges face a challenge in achieving a balance between effective dirt scraping properties and resistance to damaging the objects being cleaned.

Method used

A kitchen sponge with a three-layer structure comprising a base, intermediate, and surface layer made of urethane foam, where the surface layer is compression processed, and specific compressive load and strain conditions are set to optimize dirt-removing properties and scratch resistance.

Benefits of technology

The solution provides a kitchen sponge that effectively balances dirt-scraping ability with scratch resistance, enhancing user experience and usability.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007849015000002
    Figure 0007849015000002
  • Figure 0007849015000003
    Figure 0007849015000003
  • Figure 0007849015000004
    Figure 0007849015000004
Patent Text Reader

Abstract

To provide a kitchen sponge capable of excellently achieving both dirt scrapability and a hardly-causing-scratch property.SOLUTION: A kitchen sponge LB includes: a base layer L3; a middle layer L2 formed on a surface L3a on a first side X1 in a lamination direction of the base layer; and a surface layer L1 formed on a surface L2a on the first side in the lamination direction of the middle layer. The base layer, the middle layer, and the surface layer are each composed of a polyurethane foam. The surface layer is a compression molded polyurethane foam product. A maximum value of compression load is 200 to 350 N when measured while the kitchen sponge is pressed from the first side in the lamination direction at a speed of 50 mm / minute in a state that a surface L3b on a second side X2 in the lamination direction of the kitchen sponge is in contact with a fixed flat surface until compressive strain reaches up to a maximum strain of 75.1%.SELECTED DRAWING: Figure 1
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This invention relates to a kitchen sponge.

Background Art

[0002] Conventionally, there has been a kitchen sponge formed by laminating a plurality of layers (for example, Patent Document 1).

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] However, in the conventional technology, there has been room for improvement regarding the compatibility between the dirt scraping property against objects to be cleaned such as dishes and the difficulty of damaging the objects to be cleaned.

[0005] This invention is for solving the above-described problems, and an object thereof is to provide a kitchen sponge that can better achieve compatibility between dirt scraping property and difficulty of being damaged.

Means for Solving the Problems

[0006] 〔1〕A base layer, an intermediate layer formed on the surface on the first side in the lamination direction of the base layer, a surface layer formed on the surface on the first side in the lamination direction of the intermediate layer, A kitchen sponge comprising: the base layer, the intermediate layer, and the surface layer are each made of urethane foam, the surface layer is a compression processed molded product of urethane foam, A kitchen sponge in which the surface of the kitchen sponge on the second side in the stacking direction is in contact with a fixed plane, and the kitchen sponge is pressed from the first side in the stacking direction at a speed of 50 mm / min until the compressive strain reaches a maximum of 75.1%, the maximum value of the compressive load measured during this process is 200 to 350 N. This allows for a better balance between dirt-removing properties and scratch resistance.

[0007] [2] The kitchen sponge according to [1], wherein the maximum value of the compressive load measured while the kitchen sponge is pressed from the second side in the stacking direction at a speed of 50 mm / min with the first side of the kitchen sponge in contact with a fixed plane until the compressive strain reaches a maximum of 75.1%, is 340 N or less. This makes the kitchen sponge easier to hold in the hand when the user grips it from the second side in the stacking direction, improving the user experience.

[0008] [3] The kitchen sponge according to [1] or [2], wherein the maximum value of the compressive load measured while the kitchen sponge is pressed from the second side in the stacking direction at a speed of 50 mm / min with the surface of the kitchen sponge on the first side in the stacking direction in contact with a fixed plane until the compressive strain reaches a maximum of 75.1%, is 200 N or more. This makes the kitchen sponge easier to hold in the hand when the user grips it from the second side in the stacking direction, improving the user experience.

[0009] [4] The kitchen sponge according to any one of [1] to [3], wherein the Asker F hardness of the surface layer is 55 to 88. This allows for an even better balance between dirt-removing properties and scratch resistance.

[0010] [5] The kitchen sponge according to any one of [1] to [4], wherein the thickness of the surface layer is 6 mm or less. This allows for an even better balance between dirt-removing properties and scratch resistance.

[0011] 〔6〕The thickness of the intermediate layer is 2 to 4 times the thickness of the surface layer, The thickness of the base layer is 3.5 to 7 times the thickness of the surface layer, and the kitchen sponge according to any one of 〔1〕to 〔5〕. Thereby, it is possible to further better achieve both dirt scraping property and scratch resistance.

Advantages of the Invention

[0012] According to this invention, it is possible to provide a kitchen sponge that can better achieve both dirt scraping property and scratch resistance.

Brief Description of the Drawings

[0013] [Figure 1] It is a perspective view schematically showing a kitchen sponge according to an embodiment of the present invention. [Figure 2] It is a drawing showing the experimental results of the kitchen sponges according to Examples and Comparative Examples. [Figure 3] It is a drawing showing the experimental results of the kitchen sponges according to Examples and Comparative Examples. [Figure 4] It is a drawing showing the experimental results of the kitchen sponges according to Examples and Comparative Examples.

Modes for Carrying Out the Invention

[0014] The kitchen sponge according to the present invention is suitable for use in cleaning objects to be cleaned in a kitchen such as tableware and cooking utensils. Hereinafter, embodiments of the kitchen sponge according to this invention will be illustrated and described with reference to the drawings.

[0015] FIG. 1 schematically shows a kitchen sponge LB according to an embodiment of the present invention. The kitchen sponge LB includes a base layer L3, an intermediate layer L2, and a surface layer L1. The kitchen sponge LB of this embodiment has a three-layer structure formed by laminating these three layers. In this specification, as shown in FIG. 1, the direction in which the base layer L3, the intermediate layer L2, and the surface layer L1 are laminated is referred to as the "lamination direction X" of the kitchen sponge LB. Also, one side in the lamination direction X is referred to as the "first side X1 in the lamination direction", and the other side in the lamination direction X is referred to as the "second side X2 in the lamination direction". The intermediate layer L2 is formed on the surface L3a on the first side X1 in the lamination direction of the base layer L3. The surface layer L1 is formed on the surface L2a on the first side X1 in the lamination direction of the intermediate layer L2.

[0016] In this embodiment, the base layer L3, the intermediate layer L2, and the surface layer L1 are fixed to each other. For example, the base layer L3, the intermediate layer L2, and the surface layer L1 may be fixed to each other via an adhesive. Any adhesive can be used, and as an example, a urethane-based adhesive can be used. The urethane-based adhesive has good compatibility and will impregnate into the skeletons of each layer and adhere firmly. Alternatively, the base layer L3, the intermediate layer L2, and the surface layer L1 may be fixed to each other by heat welding or the like without using an adhesive.

[0017] The base layer L3, the intermediate layer L2, and the surface layer L1 are each made of urethane foam. The surface layer L1 is a compression processed molded product of urethane foam. It is preferable that the surface layer L1 is a compression processed molded product of soft polyurethane foam. Here, the "compression processed molded product" of urethane foam is a molded product obtained by pressing (compression processing and molding) urethane foam by applying heat and pressure to it. By the compression processing and molding of urethane foam, permanent deformation is imparted to the urethane foam itself, resulting in an increase in volume density and hardness. Therefore, the compression processed molded product of urethane foam with permanent deformation becomes extremely excellent in terms of strength, oil resistance, and solvent resistance. In this embodiment, since the surface layer L1 is a compression processed molded product of urethane foam, it can have effective dirt scraping performance (the performance of scraping off dirt) against dirt stuck to the surface of the object to be cleaned. If the surface layer L1 is made from an uncompressed urethane foam product (i.e., urethane foam that has not undergone compression molding), it may be difficult to obtain sufficient dirt-removing properties. Also, if the surface layer L1 is made from a nonwoven fabric containing an abrasive, it may easily scratch the object being cleaned (i.e., it may be difficult to obtain sufficient scratch resistance).

[0018] It is preferable that both the intermediate layer L2 and the base layer L3 are non-compression molded products.

[0019] The following describes preferred values ​​for various measurements obtained by performing a compression test on kitchen sponge LB using a compression testing device. Herein, in this specification, "compression testing device" refers to the AGS-J 5kN manufactured by Shimadzu Corporation. Although not shown in the figures, the compression testing device comprises a support base and a pressure plate located above the support base. In a compression test of kitchen sponge LB using the compression testing device, the kitchen sponge LB is placed on the upper surface of the support base and compressed from above by the pressure plate. While the kitchen sponge LB is being compressed, the compression testing device measures the compressive load acting on the kitchen sponge LB by the pressure plate at predetermined time intervals (0.3 seconds). In all compression tests described herein, the kitchen sponge LB is pressed (and thus compressed) while displacing the pressure plate in the stacking direction X at a speed of 50 mm / min until the compressive strain of the kitchen sponge LB reaches a maximum of 75.1%, and the compressive load during this period is measured. Here, the "compression strain" (%) of kitchen sponge LB refers to the ratio (λ × 100 / L) (%) of the length by which kitchen sponge LB has shrunk due to compression (i.e., the displacement length of the pressure plate) λ (mm) to the thickness (length in the lamination direction X) L (mm) of kitchen sponge LB before compression. In compression tests, the compressive load generally tends to increase as the compressive strain increases. However, while the compressive strain gradually increases, the compressive load may fluctuate slightly up or down due to measurement errors and other factors.

[0020] In a compression test using a compression testing device, the maximum value of the compressive load measured while pressing the kitchen sponge LB from the first side X1 in the stacking direction at a speed of 50 mm / min with the surface LBb on the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane until the compressive strain reaches a maximum of 75.1% is preferably 200 N or more, more preferably 230 N or more, and even more preferably 240 N or more. As a result, the hardness of the portion of the kitchen sponge LB on the first side X1 in the stacking direction is sufficiently hard when the compressive strain is near 75.1%, which improves the dirt-scraping ability (especially the dirt-scraping ability against relatively fine dirt (specifically, dirt with a particle size of 100 μm or less (especially 10 to 70 μm)) when the user rubs the object to be cleaned with strong force using the surface LBa on the first side X1 in the stacking direction of the kitchen sponge LB (in this embodiment, the surface L1a on the first side X1 in the stacking direction of the surface layer L1). In a compression test using a compression testing device, the maximum value of the compressive load measured while pressing the kitchen sponge LB from the first side X1 in the stacking direction at a speed of 50 mm / min with the surface LBb on the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane until the compressive strain reaches a maximum of 75.1% is preferably 350 N or less, more preferably 300 N or less, even more preferably 270 N or less, and even more preferably 250 N or less. As a result, the hardness of the portion of the kitchen sponge LB on the first side X1 in the stacking direction is not too hard when the compressive strain is near 75.1%, which improves the resistance to scratching the object being cleaned when the user rubs the object being cleaned with strong force using the surface LBa on the first side X1 in the stacking direction of the kitchen sponge LB (in this embodiment, the surface L1a on the first side X1 in the stacking direction of the surface layer L1). Therefore, by setting the range of the compressive load as described above, it is possible to achieve a better balance between dirt removal and resistance to scratching. Here, "the state in which the surface LBb on the second side X2 of the stacking direction of the kitchen sponge LB is in contact with the fixed plane" means that the kitchen sponge LB is oriented so that the surface LBb faces downwards, and the surface LBb is in contact with the fixed plane (i.e., the upper surface of the support stand of the compression test device). Furthermore, "pressing the kitchen sponge LB from the first side X1 in the stacking direction" means that the pressure plate of the compression testing device is in contact with the surface LBa of the kitchen sponge LB on the first side X1 in the stacking direction, and then displaced downwards (from the first side X1 in the stacking direction towards the second side X2 in the stacking direction), thereby pressing the kitchen sponge LB from the first side X1 in the stacking direction with the pressure plate. Furthermore, "compression load" refers to the compression load measured by a compression testing device. Furthermore, the "compressive load measured while pressing the kitchen sponge LB from the first side X1 in the stacking direction at a speed of 50 mm / min with the surface LBb on the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane until the compressive strain reaches a maximum of 75.1%" typically takes its maximum value when the compressive strain is close to 75.1%.

[0021] In a compression test using a compression testing device, the maximum value of the compressive load measured while pressing the kitchen sponge LB from the second side X2 in the stacking direction at a speed of 50 mm / min with the surface LBa on the first side X1 in the stacking direction of the kitchen sponge LB in contact with a fixed plane until the compressive strain reaches a maximum of 75.1% is preferably 340 N or less, more preferably 320 N or less, and even more preferably 300 N or less. As a result, when the compressive strain is near 75.1%, the hardness of the portion of the kitchen sponge LB on the second side X2 in the stacking direction is sufficiently soft, so when a user holds the kitchen sponge LB from the second side X2 in the stacking direction, the kitchen sponge LB conforms easily to the hand, the load on the hand is reduced, and the user's perceived usability is improved. Here, "the state in which the surface LBa on the first side X1 in the stacking direction of the kitchen sponge LB is in contact with the fixed plane" means that the kitchen sponge LB is oriented so that the surface LBa faces downwards, and the surface LBa is in contact with the fixed plane (i.e., the upper surface of the support stand of the compression test device). Furthermore, "pressing the kitchen sponge LB from the second side X2 in the stacking direction" means that the pressure plate of the compression testing device is in contact with the surface LBb of the kitchen sponge LB on the second side X2 in the stacking direction, and then displaced downwards (from the second side X2 in the stacking direction toward the first side X1 in the stacking direction), thereby pressing the kitchen sponge LB from the second side X2 in the stacking direction with the pressure plate. Furthermore, the "compressive load measured while pressing the kitchen sponge LB from the second side X2 in the stacking direction at a speed of 50 mm / min with the surface LBa on the first side X1 in the stacking direction of the kitchen sponge LB in contact with a fixed plane until the compressive strain reaches a maximum of 75.1%" typically takes its maximum value when the compressive strain is close to 75.1%.

[0022] In a compression test using a compression testing device, the maximum value of the compressive load measured while pressing the kitchen sponge LB from the second side X2 in the stacking direction at a speed of 50 mm / min with the surface LBa on the first side X1 in the stacking direction of the kitchen sponge LB in contact with a fixed plane until the compressive strain reaches a maximum of 75.1% is preferably 200 N or more, more preferably 250 N or more, and even more preferably 280 N or more. This ensures that the hardness of the portion of the kitchen sponge LB on the second side X2 in the stacking direction is not too soft when the compressive strain is near 75.1%, thereby improving the user's feel when holding the kitchen sponge LB by hand from the second side X2 in the stacking direction.

[0023] In a compression test using a compression testing device, the kitchen sponge LB is preferably subjected to a compression load of 15.0 N or more, and more preferably 17.0 N or more, when the compressive strain reaches 6.5% while the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the surface LBb on the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane. This increases the hardness of the portion of the kitchen sponge LB on the first side X1 in the stacking direction when the compressive strain is 6.5%, thereby improving the dirt-scraping ability (especially for relatively fine dirt (specifically, dirt with a particle size of 100 μm or less (especially 10 to 70 μm)) when the user rubs the object to be cleaned with a soft touch (weak force) using the surface LBa (in this embodiment, the surface L1a on the first side X1 in the stacking direction of the surface layer L1) of the kitchen sponge LB. Furthermore, in a compression test using a compression testing device, while the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the surface LBb on the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane, the compression load at which the compression strain reaches 6.5% may be 30.0 N or less, 25.0 N or less, or 20.0 N or less.

[0024] In a compression test using a compression testing device, the kitchen sponge LB is preferably subjected to a compression load of 15.0 N or more, and more preferably 16.0 N or more, when the compressive strain reaches 6.0% while the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the surface LBb on the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane. This increases the hardness of the portion of the kitchen sponge LB on the first side X1 in the stacking direction when the compressive strain is 6.0%, thereby improving the dirt-scraping ability (especially for relatively fine dirt (specifically, dirt with a particle size of 100 μm or less (especially 10 to 70 μm)) when the user rubs the object to be cleaned with a soft touch (weak force) using the surface LBa (in this embodiment, the surface L1a on the first side X1 in the stacking direction of the surface layer L1) of the kitchen sponge LB. Furthermore, in a compression test using a compression testing device, while the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the surface LBb on the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane, the compressive load at which the compressive strain reaches 6.0% may be 30.0 N or less, 25.0 N or less, or 20.0 N or less.

[0025] In a compression test using a compression testing device, when the kitchen sponge LB is pressed at a speed of 50 mm / min from the first side X1 in the stacking direction with the surface LBb on the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane, it is preferable that the compressive load when the compressive strain reaches 5.6% is 10.0 N or more, and more preferably 15.0 N or more. This increases the hardness of the portion of the kitchen sponge LB on the first side X1 in the stacking direction when the compressive strain is 5.6%, thereby improving the dirt-scraping ability (especially for relatively fine dirt (specifically, dirt with a particle size of 100 μm or less (especially 10 to 70 μm)) when the user rubs the object to be cleaned with a soft touch (weak force) using the surface LBa (in this embodiment, the surface L1a on the first side X1 in the stacking direction of the surface layer L1) of the kitchen sponge LB. Furthermore, in a compression test using a compression testing device, while the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the surface LBb on the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane, the compressive load at which the compressive strain reaches 5.6% may be 25.0 N or less, 20.0 N or less, or 17.0 N or less.

[0026] In a compression test using a compression testing device, the kitchen sponge LB is preferably subjected to a compression load of 10.0 N or more, and more preferably 13.0 N or more, when the compressive strain reaches 5.0% while the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the surface LBb on the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane. This increases the hardness of the portion of the kitchen sponge LB on the first side X1 in the stacking direction when the compressive strain is 5.0%, thereby improving the dirt-scraping ability (especially for relatively fine dirt (specifically, dirt with a particle size of 100 μm or less (especially 10 to 70 μm)) when the user rubs the object to be cleaned with a soft touch (weak force) using the surface LBa (in this embodiment, the surface L1a on the first side X1 in the stacking direction of the surface layer L1) of the kitchen sponge LB. Furthermore, in a compression test using a compression testing device, while the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the surface LBb on the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane, the compressive load at which the compressive strain reaches 5.0% may be 25.0 N or less, 20.0 N or less, or 16.0 N or less.

[0027] In a compression test using a compression testing device, when the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the surface LBb on the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane, it is preferable that the compressive load when the compressive strain reaches 4.0% is 5.0 N or more, and more preferably 8.0 N or more. This increases the hardness of the portion of the kitchen sponge LB on the first side X1 in the stacking direction when the compressive strain is 4.0%, thereby improving the dirt-scraping ability (especially for relatively fine dirt (specifically, dirt with a particle size of 100 μm or less (especially 10 to 70 μm)) when the user rubs the object to be cleaned with a soft touch (weak force) using the surface LBa (in this embodiment, the surface L1a on the first side X1 in the stacking direction of the surface layer L1) of the kitchen sponge LB. Furthermore, in a compression test using a compression testing device, while the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the surface LBb on the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane, the compressive load at which the compressive strain reaches 4.0% may be 20.0 N or less, 15.0 N or less, or 10.0 N or less.

[0028] In a compression test using a compression testing device, when the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the surface LBb on the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane, it is preferable that the compressive strain when the compressive load reaches 8.6 N is 5.0% or less, more preferably 4.5% or less, and even more preferably 4.2% or less. This allows the hardness of the portion of the kitchen sponge LB on the first side X1 in the stacking direction to be increased from a lower compressive strain, thereby improving the dirt-scraping ability (especially against relatively fine dirt (specifically, dirt with a particle size of 100 μm or less (especially 10 to 70 μm)) when the user rubs the object to be cleaned with a soft touch (with light force) using the surface LBa (in this embodiment, the surface L1a on the first side X1 in the stacking direction of the surface layer L1) of the kitchen sponge LB. Furthermore, in a compression test using a compression testing device, when the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the surface LBb on the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane, the compressive strain when the compressive load reaches 8.6 N may be 3.2% or more, or 3.8% or more.

[0029] In a compression test using a compression testing device, the kitchen sponge LB is preferably subjected to a compression load of 35.0 N or more, and more preferably 38.0 N or more, when the compressive strain reaches 40.0% while the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane. This increases the hardness of the portion of the kitchen sponge LB on the first side X1 in the stacking direction when the compressive strain is 40.0%, thereby improving the dirt-scraping ability (especially for relatively fine dirt (specifically, dirt with a particle size of 100 μm or less (especially 10-70 μm))) when the user rubs the object to be cleaned with normal (i.e., a moderate force) using the surface LBa (in this embodiment, the surface L1a of the surface layer L1 on the first side X1 in the stacking direction) of the kitchen sponge LB. From a similar viewpoint, in a compression test using a compression testing device, when the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the second side X2 of the kitchen sponge LB in contact with a fixed plane, it is preferable that the compressive load when the compressive strain reaches 40.6% is 35.0 N or more, and more preferable that it is 38.0 N or more. Furthermore, in a compression test using a compression testing device, when the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the second side X2 of the kitchen sponge LB in contact with a fixed plane, it is preferable that the difference between the minimum and maximum values ​​of the compressive load within the range of 40.0 to 50.0% is 6.0 N or less, and more preferably 5.2 N or less. This allows the hardness of the portion of the kitchen sponge LB on the first side X1 in the lamination direction to remain almost constant when the compressive strain is 40-50%. As a result, even if the force applied by the user to rub the object being cleaned with normal (i.e., moderate) force using the surface LBa (in this embodiment, the surface L1a of the surface layer L1 on the first side X1 in the lamination direction) of the kitchen sponge LB, the dirt-removing ability (especially for dirt with relatively fine particles (specifically, dirt with a particle size of 100 μm or less (especially 10-70 μm)) can be maintained almost constant, even if the force applied fluctuates somewhat. This, in turn, improves the stability of the user's perceived feel during use. From a similar viewpoint, in a compression test using a compression testing device, when the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the second side X2 of the kitchen sponge LB in contact with a fixed plane, it is preferable that the difference between the minimum and maximum values ​​of the compressive load within the range of 40.6 to 50.3% is 5.0 N or less, and more preferably 4.0 N or less. Furthermore, in a compression test using a compression testing device, while the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the second side X2 of the kitchen sponge LB in contact with a fixed plane, the compression load at which the compressive strain reaches 40.0% may be 50 N or less, 45 N or less, or 41 N or less. Similarly, in a compression test using a compression testing device, when the kitchen sponge LB is pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the second side X2 of the kitchen sponge LB in contact with a fixed plane, the compressive load at which the compressive strain reaches 40.6% may be 50 N or less, 45 N or less, or 41 N or less.

[0030] The preferred configuration of kitchen sponge LB will be explained in more detail below. The preferred values ​​of the various measurements obtained by the compression test described above can be achieved by appropriately adjusting the hardness, thickness, and material of each layer constituting kitchen sponge LB. For example, this can be more easily achieved by the various configurations described below.

[0031] The urethane foam forming the base layer L3, the intermediate layer L2, and the surface layer L1 may be either ester-based urethane foam or ether-based urethane foam.

[0032] Ester-based polyurethane foam is formed by reacting a polyester polyol, obtained by reacting aliphatic dicarboxylic acids such as succinic acid, oxalic acid, malonic acid, and adipic acid with aliphatic and / or alicyclic polyols such as ethylene glycol, propylene glycol, and 1,4-butanediol, with polyisocyanates such as TDI, MDI, TODI, and XDI, and then forming cells. Typically, the cell membrane adheres to all the structural elements. The foam exhibits excellent properties, with little variation in cell properties, a superior appearance, high tensile strength and elongation, and excellent oil and solvent resistance.

[0033] The base layer L3 and the surface layer L1 are preferably three-dimensional mesh urethane foam having interconnected cells. Three-dimensional mesh urethane foam is urethane foam from which the cell membrane has been removed, leaving only the skeleton and exhibiting a three-dimensional mesh structure. Typically, this cell membrane removal is performed by a known explosive method, and since the removed cell membrane adheres integrally to the skeleton, it becomes stronger than before treatment, and also has superior oil resistance and solvent resistance.

[0034] The intermediate layer L2 is preferably a urethane foam with the cell membranes intact. However, some of the cell membranes may have pores that communicate with each other. In this case, since the urethane foam of the intermediate layer L2 has not had the cell membranes removed, the intermediate layer L2 has a function of retaining detergent and water (retention function).

[0035] As mentioned above, the base layer L3 is preferably an uncompressed molded product. The base layer L3 is preferably a urethane foam with the cell membrane intact. In this case, the base layer L3 has a function (foaming function) that allows the detergent to quickly blend in and create a lather all at once, thereby increasing the cleaning power.

[0036] The Asker F hardness of the surface layer L1 is preferably 55 or higher, and more preferably 60 or higher. This improves the dirt-scraping ability when the user rubs the surface layer L1 against the object to be cleaned. Furthermore, the Asker F hardness of the surface layer L1 is preferably 88 or less, and more preferably 83 or less. This improves the resistance to scratching when the user rubs the object being cleaned with the surface layer L1. In this specification, the "Asker F hardness" of any component (surface layer L1, intermediate layer L2, base layer L3, etc.) refers to the measurement value obtained from the Asker rubber hardness tester Type F (manufactured by Polymer Instruments Co., Ltd.) after the component has been placed on a horizontal platform and the measurement value of the tester has stabilized (for example, between 20 seconds and 1 minute 30 seconds after placement). The time until measurement may be adjusted as appropriate to allow the tester to stabilize after being placed on the component.

[0037] The Asker F hardness of the surface layer L1 is preferably greater than that of the intermediate layer L2. This improves the ability to scrape off dirt. Furthermore, it is preferable that the Asker F hardness of the surface layer L1 is greater than that of the base layer L3.

[0038] The thickness of the surface layer L1 (length in the lamination direction X) is preferably 6 mm or less, more preferably 4 mm or less, and even more preferably 3 mm or less. This allows for an even better balance between dirt removal and scratch resistance. It also improves the ability to conform to the shape of the object being cleaned. Furthermore, the thickness of the surface layer L1 is preferably 1 mm or more.

[0039] The thickness of the intermediate layer L2 (length in the lamination direction X) is preferably 2 to 4 times the thickness of the surface layer L1. The thickness of the base layer L3 (length in the stacking direction X) is preferably 3.5 to 7 times the thickness of the surface layer L1. These features allow for an even better balance between dirt-removing properties and scratch resistance.

[0040] The thickness of the intermediate layer L2 may be, for example, 9 to 11 mm. The thickness of the base layer L3 may be, for example, 17 to 19 mm.

[0041] The density of the urethane foam constituting the surface layer L1 before compression molding is, for example, 27.5 to 32.5 kg / m³. 3 That is also acceptable. The density of the mesoscale layer L2 is, for example, 29-33 kg / m³. 3 That is also acceptable. The density of the base layer L3 is, for example, 26-30 kg / m³. 3 That is also acceptable. Here, "density" shall be measured in accordance with JIS K6400-1.

[0042] The hardness (N) of the surface layer L1 before compression molding may be, for example, 105 to 155 N. The hardness (N) of the intermediate layer L2 may be, for example, 150 to 250 N. The hardness (N) of the base layer L3 may be, for example, 70 to 130 N. Here, "hardness (N)" refers to the 25% ILD hardness measured in accordance with JIS K6400-2 (Method D).

[0043] The number of cells in the compression-molded urethane foam used as the surface layer L1 may be 5 to 10 cells per inch. The number of cells in the intermediate layer L2 of the urethane foam may be 25 to 35 cells per inch. The number of cells in the base layer L3 of the polyurethane foam may be 10 to 20 cells per inch.

[0044] The compression ratio of the compressed molded product as the surface layer L1 is preferably 4.5 or higher, and more preferably 5 or higher. This improves the ability to scrape off dirt. Furthermore, the compression ratio of the compressed molded product as the surface layer L1 is preferably less than 7. This improves its resistance to scratches.

[0045] It is preferable that the surface layer L1 is positioned such that the compression direction during the compression molding of the compressed molded product coincides with the lamination direction X of the kitchen sponge LB. This makes it easier to manufacture the base layer L3, intermediate layer L2, and surface layer L1 as a single laminate. In addition, it makes it easier for the foaming in the base layer L3 and intermediate layer L2 to be carried over to the surface layer L1.

[0046] The above describes exemplary embodiments of the present invention, and various modifications can be made without departing from the scope of the claims. For example, the kitchen sponge LB may further comprise other layers in addition to the surface layer L1, intermediate layer L2, and base layer L3. Specifically, for example, another layer may be formed on the surface L3b of the base layer L3 on the second side X2 in the lamination direction. The material of the other layer is not limited to urethane foam and can be any material. Specifically, the other layer can be formed using, for example, organic fibers such as cellulose, or foamed resins such as melamine foam, polyethylene foam, and polypropylene foam. [Examples]

[0047] Kitchen sponges LB according to Example 1 and Comparative Examples 1-4 were prepared and evaluated, and the results are described below. When values ​​such as compressibility, compressive load, and strain are stated to one decimal place, they were all rounded to two decimal places. The specifications of the kitchen sponge LB for each example are shown in Table 1. For each example of kitchen sponge LB, in a compression test using the above-described compression testing apparatus, the kitchen sponge LB was pressed from the first side X1 in the stacking direction at a speed of 50 mm / min with the surface LBb on the second side X2 in the stacking direction of the kitchen sponge LB in contact with a fixed plane until the compressive strain reached a maximum of 75.1%. The compressive load-compressive strain curve is shown in Figure 4, and the maximum value of the compressive load measured during the pressing is shown in Figure 2. For each example of kitchen sponge LB, in the compression test using the above-described compression testing apparatus, the maximum value of the compressive load measured while pressing the kitchen sponge LB from the second side X2 in the stacking direction at a speed of 50 mm / min until the compressive strain reached a maximum of 75.1% with the surface LBa on the first side X1 in the stacking direction of the kitchen sponge LB in contact with a fixed plane is shown in Figure 3. Note that Figures 2 and 3 are shown as integers, rounded to the nearest whole number.

[0048] In the compression test shown in Figure 4, the kitchen sponge LB of Example 1 had a compressive load of 8.6 N when the compressive strain reached 4.0%, a compressive load of 16.2 N when the compressive strain reached 5.6%, and a compressive load of 17.9 N when the compressive strain reached 6.5%. Furthermore, in the compression test shown in Figure 4, the kitchen sponge LB of Example 1 exhibited a compressive strain of 4.0% when the compressive load reached 8.6 N. Furthermore, in the compression test shown in Figure 4, the kitchen sponge LB of Example 1 had a compressive load of 39.2 N when the compressive strain reached 40.6%. Furthermore, in the compression test shown in Figure 4, the difference between the minimum and maximum compressive loads for the kitchen sponge LB of Example 1 within the range of 40.6-50.3% compressive strain was 3.7 N.

[0049] For each example of the kitchen sponge LB, we evaluated its ability to remove dirt, its resistance to scratching, and its overall usability. In evaluating the dirt-removing ability, a sample of kitchen sponge LB was obtained by cutting it to a width of 50 mm, and the thickness of the sample was measured. The sample was then gradually compressed in the thickness direction, and the thickness of the sample when the compressive load reached 20 N (hereinafter referred to as the "set thickness") was determined. After that, the sample was set in the measuring device so that its thickness became the set thickness. The measuring device consisted of upper and lower plates facing each other in the vertical direction, multiple spacers placed between the upper and lower plates, and sandpaper. The sample was placed between the upper and lower plates with the surface layer L1 of the sample facing upward, and the distance between the upper and lower plates was adjusted using the spacers to adjust the thickness of the sample to the set thickness. The sandpaper had a grit of 1000 and a width of 10 mm. By using a grit of 1000 sandpaper, it was possible to evaluate the dirt-removing ability against relatively fine dirt (specifically, dirt with a particle size of 100 μm or less (especially 10-70 μm)). The sandpaper was placed between the sample and the top plate, with the length of the sandpaper aligned with the width of the sample. The jig with the sandpaper attached was then pulled 20 mm in the width direction of the sample, and the frictional force between the sample's surface layer L1 and the sandpaper was measured. The tensile force acting on the tip of the plate with the sandpaper attached was measured using a tensile testing machine, and this measurement was defined as the frictional force. The frictional force was also measured similarly for compressive loads of 40 N and 60 N. For each of the compressive loads of 20 N, 40 N, and 60 N, the measured frictional force was used as an index value to evaluate the dirt-scraping ability. A fresh sample and sandpaper were used for each measurement. The results are shown in Table 1. A higher index value indicates higher frictional force, and therefore, higher dirt-scraping ability against relatively fine dirt (specifically, dirt with a particle size of 100 μm or less (especially 10-70 μm)). When the compressive load was set to 20N, it simulated rubbing the object to be cleaned with a weak force; when the compressive load was set to 40N, it simulated rubbing the object to be cleaned with a normal force; and when the compressive load was set to 60N, it simulated rubbing the object to be cleaned with a slightly stronger force. In evaluating scratch resistance, the surface LBa of the kitchen sponge LB on the first side X1 in the lamination direction (i.e., surface L1a of the surface layer L1 on the first side X1 in the lamination direction) was used to evaluate the scratch resistance when rubbing the object being cleaned with strong force, using a four-level scale: ◎ (Excellent), ○ (Good), △ (Fair), and × (Poor). The results are shown in Table 1. In evaluating the feel of the sponge, the ease with which the kitchen sponge LB fit in the hand when held from the second side X2 in the stacking direction was evaluated on a two-point scale: ○ and △. ○ indicates that it is moderately soft and fits well in the hand. △ indicates that it does not fit well in the hand. The results are shown in Table 1.

[0050] [Table 1]

[0051] As can be seen from the results in Table 1, the kitchen sponge LB of Example 1 achieves a better balance of dirt-removing ability and scratch resistance compared to the kitchen sponges LB of Comparative Examples 1 to 4. Comparative Example 1, as can be seen from Figures 2 and 4, has a hard surface and excellent dirt-removing ability, but the surface is too hard and is made of a nonwoven fabric containing abrasives, making it prone to scratching. Comparative Example 2 is similar to Example 1 in that the surface is made of a compressed urethane foam product and is not prone to scratching, but as can be seen from Figures 2 and 4, the surface is not hard enough, resulting in weak dirt-removing ability and inferior cleaning power compared to Example 1. Comparative Example 3 has values ​​close to Example 1 as shown in Figures 2 and 3, but the surface is made of a nonwoven fabric containing abrasives, making it more prone to scratching compared to Example 1. Comparative Example 4, as can be seen from Figures 2 and 4, has a soft surface, but the surface is made of a nonwoven fabric containing abrasives, making it prone to scratching. Furthermore, regarding usability, while Examples 1, 2, and 3 yielded good results, Comparative Example 1 was too hard and difficult to hold, and Comparative Example 4 was too soft and difficult to hold and wash. [Industrial applicability]

[0052] The kitchen sponge according to the present invention is suitable for use in cleaning kitchen items such as dishes and cooking utensils. [Explanation of symbols]

[0053] LB: Kitchen sponge, LBa: First side in the lamination direction, LBb: Second side in the lamination direction, L1: Surface layer, L1a: Surface on the first side in the stacking direction, L1b: Surface on the second side in the stacking direction L2: Intermediate layer, L2a: Surface on the first side in the stacking direction, L2b: Surface on the second side in the stacking direction L3: base layer, L3a: surface on the first side in the stacking direction, L3b: surface on the second side in the stacking direction X: stacking direction, X1: first side in the stacking direction, X2: second side in the stacking direction

Claims

1. The base layer, An intermediate layer formed on the first side of the stacking direction of the base layer, A surface layer formed on the first side of the intermediate layer in the stacking direction, A kitchen sponge equipped with, The base layer, the intermediate layer, and the surface layer are each made of urethane foam. The aforementioned surface layer is a compressed and molded product of urethane foam. A kitchen sponge in which the surface of the kitchen sponge on the second side in the stacking direction is in contact with a fixed plane, and the kitchen sponge is pressed from the first side in the stacking direction at a speed of 50 mm / min until the compressive strain reaches a maximum of 75.1%, the maximum value of the compressive load measured during this process is 200 to 350 N.

2. The kitchen sponge according to claim 1, wherein the maximum value of the compressive load measured while the kitchen sponge is pressed from the second side in the stacking direction at a speed of 50 mm / min with the first side of the kitchen sponge in the stacking direction in contact with a fixed plane until the compressive strain reaches a maximum of 75.1%, is 340 N or less.

3. The kitchen sponge according to claim 1 or 2, wherein the maximum value of the compressive load measured while the kitchen sponge is pressed from the second side in the stacking direction at a speed of 50 mm / min with the first side of the kitchen sponge in the stacking direction in contact with a fixed plane until the compressive strain reaches a maximum of 75.1%, is 200 N or more.

4. The kitchen sponge according to claim 1 or 2, wherein the Asker F hardness of the surface layer is 55 to 88.

5. The kitchen sponge according to claim 1 or 2, wherein the thickness of the surface layer is 6 mm or less.

6. The thickness of the intermediate layer is 2 to 4 times the thickness of the surface layer. The kitchen sponge according to claim 1 or 2, wherein the thickness of the base layer is 3.5 to 7 times the thickness of the surface layer.

Citation Information

Patent Citations

  • Organic hydrophilic group high-water-absorptivity sponge structure

    CN216602774U

  • Kitchen sponge

    JP2003000521A

  • Cleaning tool

    JP2017006198A

  • Packing material and packing box

    JP2020175898A

  • Cleaning sponge and polyurethane foam for cleaning sponge

    JP2021166823A